Torres-Alba Abelardo, Mercado-Colmenero Jorge Manuel, Caballero-Garcia Juan de Dios, Martin-Doñate Cristina
Department of Engineering Graphics, Design and Projects, University of Jaen, Campus Las Lagunillas s/n, Building A3-210, 23071 Jaen, Spain.
Research Group INGDISIG Jaen, University of Jaen, 23071 Jaen, Spain.
Polymers (Basel). 2023 Jan 21;15(3):558. doi: 10.3390/polym15030558.
Eliminating warpage in injection molded polymeric parts is one of the most important problems in the injection molding industry today. This situation is critical in geometries that are particularly susceptible to warping due to their geometric features, and this occurs with topologies of great length and slenderness with high changes in thickness. These features are, in these special geometries, impossible to manufacture with traditional technologies to meet the dimensional and sustainable requirements of the industry. This paper presents an innovative green conformal cooling system that is specifically designed for parts with slender geometric shapes that are highly susceptible to warping. Additionally, the work presented by the authors investigates the importance of using highly conductive inserts made of steel alloys in combination with the use of additively manufactured conformal channels for reducing influential parameters, such as warpage, cooling time, and residual stresses in the complex manufacturing of long and slender parts. The results of this real industrial case study indicated that the use of conformal cooling layouts decreased the cycle time by 175.1 s-66% below the current cooling time; the temperature gradient by 78.5%-specifically, 18.16 °C; the residual stress by 39.78 MPa-or 81.88%; and the warpage by 6.9 mm-or 90.5%. In this way, it was possible to achieve a final warping in the complex geometry studied of 0.72 mm, which was under the maximum value required at the industrial level of 1 mm. The resulting values obtained by the researchers present a turning point from which the manufacturing and sustainability in the injection molding of said plastic geometries is possible, and they take into account that the geometric manufacturing features analyzed will present a great demand in the coming years in the auto parts manufacturing industry.
消除注塑成型聚合物部件中的翘曲是当今注塑行业最重要的问题之一。在由于其几何特征而特别容易翘曲的几何形状中,这种情况至关重要,并且在长度和细长比很大且厚度变化很大的拓扑结构中会出现这种情况。在这些特殊的几何形状中,采用传统技术无法制造出满足行业尺寸和可持续性要求的产品。本文提出了一种创新的绿色随形冷却系统,该系统专门为极易翘曲的细长几何形状的部件设计。此外,作者所做的工作研究了使用由钢合金制成的高导热性镶件并结合使用增材制造的随形流道对于减少诸如翘曲、冷却时间和残余应力等影响参数在长而细长部件的复杂制造中的重要性。这个实际工业案例研究的结果表明,使用随形冷却布局使周期时间减少了175.1秒,比当前冷却时间低66%;温度梯度降低了78.5%,具体为18.16℃;残余应力降低了39.78MPa,即81.88%;翘曲降低了6.9mm,即90.5%。通过这种方式,在所研究的复杂几何形状中实现了最终翘曲为0.72mm,低于工业水平要求的最大值1mm。研究人员获得的结果呈现了一个转折点,从这个转折点开始,所述塑料几何形状的注塑成型中的制造和可持续性成为可能,并且考虑到所分析的几何制造特征在未来几年汽车零部件制造行业中将有很大需求。